Study 4e Electronic Structure Quantum Models in MCAT Chemical and Physical Foundations of Biological Systems with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
All flashcards
Flashcard 1: What is the Heisenberg uncertainty principle relating position and momentum?
Answer: ΔxΔp≥2ℏ. The principle quantifies the limit on simultaneously knowing a particle's position and momentum precisely, reflecting wave-particle duality.
Flashcard 2: What does Hund's rule state about filling degenerate orbitals?
Answer: Maximize unpaired electrons before pairing. Hund's rule minimizes electron-electron repulsion by maximizing spin multiplicity in degenerate orbitals.
Flashcard 3: What is the de Broglie wavelength of a particle with momentum p?
Answer: λ=ph. De Broglie's hypothesis states that particles exhibit wave-like properties, with wavelength inversely proportional to momentum via Planck's constant.
Flashcard 4: What does the Pauli exclusion principle state for electrons in an atom?
Answer: No two electrons share the same 4 quantum numbers. Pauli exclusion ensures electrons are fermions, requiring unique sets of quantum numbers for indistinguishability and antisymmetry.
Flashcard 5: What is the value relationship between h and ℏ?
Answer: ℏ=2πh. Reduced Planck's constant is defined as Planck's constant divided by 2π, commonly used in quantum mechanical equations.
Flashcard 6: How many orbitals exist in a subshell with azimuthal quantum number ℓ?
Answer: 2ℓ+1 orbitals. The number of orbitals in a subshell equals the possible mℓ values, given by 2ℓ+1.
Flashcard 7: What is the relationship between wavelength and frequency for electromagnetic radiation?
Answer: c=λν. For electromagnetic waves, the speed of light equals the product of wavelength and frequency in vacuum.
Flashcard 8: What is the maximum number of electrons that can occupy one orbital?
Answer: 2 electrons (opposite spins). Pauli exclusion allows at most two electrons per orbital, requiring opposite spins to differ in ms.
Flashcard 9: What are the allowed values of mℓ for a given azimuthal quantum number ℓ?
Answer: mℓ=−ℓ,…,0,…,+ℓ. Allowed mℓ values are integers from −ℓ to +ℓ, corresponding to possible orientations of orbital angular momentum.
Flashcard 10: Which quantum number specifies electron spin, and what values can it take?
Answer: Spin quantum number ms=±21. Electron spin is an intrinsic property, with ms taking values of +21 or −21 to denote up or down spin.
Flashcard 11: What is the relationship between photon energy, frequency, and Planck's constant?
Answer: E=hν. Photon energy is quantized and directly proportional to its frequency, with Planck's constant as the proportionality factor.
Flashcard 12: Identify the number of orbitals in the d subshell and its maximum electrons.
Answer: 5 orbitals; 10 electrons. For d subshell (ℓ=2), 2ℓ+1=5 orbitals accommodate up to 10 electrons following Pauli exclusion.
Flashcard 13: What subshell letters correspond to ℓ=0,1,2,3?
Answer: ℓ=0→s, 1→p, 2→d, 3→f. Subshell notation uses letters where s (ℓ=0) is spherical, p (ℓ=1) dumbbell-shaped, d (ℓ=2) clover-like, and f (ℓ=3) more complex.
Flashcard 14: State the photon energy equation written in terms of wavelength.
Answer: E=λhc. Photon energy is inversely proportional to wavelength, derived by combining Planck's relation with the speed of light equation.
Flashcard 15: What does the square of the wavefunction magnitude represent in quantum mechanics?
Answer: ∣ψ∣2 is probability density. In the Copenhagen interpretation, the square of the wavefunction's magnitude gives the probability density of finding a particle at a point.
Flashcard 16: Which subshell has lower energy in a multielectron atom: 4s or 3d?
Answer: 4s is lower energy than 3d (fills first). In multielectron atoms, orbital energies depend on n+ℓ, making 4s (n+ℓ=4) lower than 3d (n+ℓ=5).
Flashcard 17: Which quantum number n, ℓ, mℓ, or ms determines an orbital's energy level (shell)?
Answer: Principal quantum number n. The principal quantum number n defines the electron's energy level and average distance from the nucleus in hydrogen-like atoms.
Flashcard 18: What are the allowed values of ℓ for a given principal quantum number n?
Answer: ℓ=0,1,…,n−1. Allowed ℓ values range from 0 to n−1 to ensure subshells fit within the principal shell's energy hierarchy.
Flashcard 19: Which quantum number n, ℓ, mℓ, or ms determines an orbital's shape (subshell)?
Answer: Azimuthal quantum number ℓ. The azimuthal quantum number ℓ specifies the orbital angular momentum, determining the subshell type and shape.
Flashcard 20: What is the maximum number of electrons in a subshell with quantum number ℓ?
Answer: 2(2ℓ+1) electrons. Maximum electrons in a subshell equal twice the number of orbitals, accommodating two per orbital with opposite spins.
Flashcard 21: What does the Aufbau principle state about electron filling?
Answer: Electrons fill lowest-energy orbitals first. Aufbau principle follows increasing orbital energies to achieve the ground state electron configuration.
Flashcard 22: What is the maximum number of electrons in the n=3 shell?
Answer: 2(32)=18 electrons. The formula 2n2 sums capacities of subshells from ℓ=0 to n−1 for the third shell.
Flashcard 23: Which quantum number n, ℓ, mℓ, or ms determines an orbital's orientation in space?
Answer: Magnetic quantum number mℓ. The magnetic quantum number mℓ specifies the orbital's projection along a magnetic field, defining its spatial orientation.
Flashcard 24: Identify the number of orbitals in the p subshell and its maximum electrons.
Answer: 3 orbitals; 6 electrons. For p subshell (ℓ=1), 2ℓ+1=3 orbitals hold up to 6 electrons with paired spins.
Flashcard 25: What is the maximum number of electrons in the nth principal shell?
Answer: 2n2 electrons. The nth shell's capacity derives from summing subshell maxima, yielding 2n2 electrons total.